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Origin of superconductivity in hole doped SrBiO₃ bismuth oxide perovskite from parameter-free first-principles simulations

Physics

Origin of superconductivity in hole doped SrBiO₃ bismuth oxide perovskite from parameter-free first-principles simulations

J. Varignon

This fascinating study by Julien Varignon explores the mechanisms behind superconductivity in Sr1-xKxBiO3, showcasing how parameter-free DFT simulations reveal critical insights into the material's insulator-to-metal transition and its exceptional electron-phonon coupling. Discover the conditions essential for superconductivity in these intriguing bismuthates.

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~3 min • Beginner • English
Abstract
The recent discovery of nickel oxide superconductors have highlighted the importance of first-principles simulations for understanding the formation of the bound electrons at the core of superconductivity. Nevertheless, superconductivity in oxides is often ascribed to strong electronic correlation effects that density functional theory (DFT) cannot properly take into account, thereby disqualifying this technique. Being isostructural to nickel oxides, Sr1−xKxBiO3 superconductors form an ideal testbed for unveiling the lowest theory level needed to model complex superconductors and the underlying pairing mechanism yielding superconductivity. Here I show that parameter-free DFT simulations capture all the experimental features and related quantities of Sr1−xKxBiO3 superconductors, encompassing the prediction of an insulating to metal phase transition upon increasing the K doping content and of an electron-phonon coupling constant of 1.22 in sharp agreement with the experimental value of 1.3 ± 0.2. The proximity of a disproportionated phase is further demonstrated to be a prerequisite for superconductivity in bismuthates.
Publisher
npj Computational Materials
Published On
Mar 01, 2023
Authors
Julien Varignon
Tags
superconductivity
DFT simulations
Sr1-xKxBiO3
electron-phonon coupling
insulator-to-metal transition
bismuthates
doping
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